Key Laboratory of Shaanxi Province for Craniofacial Precision Medicine Research, College of Stomatology, Xi'an Jiaotong University, Xi'an, 710049, China.
School of Stomatology, The Fourth Military Medical University, Xi'an, 710032, China.
Small. 2024 Jan;20(3):e2207951. doi: 10.1002/smll.202207951. Epub 2023 Aug 24.
Bone mineralization is a ubiquitous process among vertebrates that involves a dynamic physical/chemical interplay between the organic and inorganic components of bone tissues. It is now well documented that carbonated apatite, an inorganic component of bone, is proceeded through transient amorphous mineral precursors that transforms into the crystalline mineral phase. Here, the evolution on mineral precursors from their sources to the terminus in the bone mineralization process is reviewed. How organisms tightly control each step of mineralization to drive the formation, stabilization, and phase transformation of amorphous mineral precursors in the right place, at the right time, and rate are highlighted. The paradigm shifts in biomineralization and biomaterial design strategies are intertwined, which promotes breakthroughs in biomineralization-inspired material. The design principles and implementation methods of mineral precursor-based biomaterials in bone graft materials such as implant coatings, bone cements, hydrogels, and nanoparticles are detailed in the present manuscript. The biologically controlled mineralization mechanisms will hold promise for overcoming the barriers to the application of biomineralization-inspired biomaterials.
骨骼矿化是脊椎动物中普遍存在的过程,涉及骨骼组织中有机和无机成分之间的动态物理/化学相互作用。现在已有充分的文献证明,碳酸磷灰石是骨骼的无机成分,是通过瞬态无定形矿物前体转化而来的,这些前体进一步转化为结晶矿物相。本文综述了矿物前体从其来源到骨骼矿化过程终点的演变过程。强调了生物体如何紧密控制矿化的每一步,以在正确的时间和速率驱动无定形矿物前体的形成、稳定和相转变。生物矿化和生物材料设计策略的范式转变相互交织,促进了受生物矿化启发的材料的突破。本文详细介绍了基于矿物前体的生物材料在骨移植材料(如植入物涂层、骨水泥、水凝胶和纳米颗粒)中的设计原理和实施方法。受生物控制的矿化机制有望克服生物矿化启发的生物材料应用的障碍。